光催化
吸附
甲烷
材料科学
选择性
催化作用
甲烷化
化学工程
合成气
光化学
产量(工程)
二氧化碳
辐照
可再生能源
氧气
工作(物理)
碳纤维
二氧化碳电化学还原
太阳能
反应中间体
还原(数学)
纳米技术
一氧化碳
化学
能量转换效率
解吸
反应机理
作者
Quan Zhang,Haozhen Wang,Yuan Zhang,Hui Xu,Gengfeng Zheng
出处
期刊:ACS Nano
[American Chemical Society]
日期:2026-08-10
标识
DOI:10.1021/acsnano.6c11178
摘要
Abstract Photocatalytic reduction of carbon dioxide (CO2) to methane (CH4) represents a promising route for renewable energy storage, yet it suffers from low efficiency. The challenge exists in the key *CO intermediate adsorption behavior, in which the typically top-bonded *CO favors CO release, resulting in dominant syngas (CO and H2) products. Herein, we demonstrate an intermediate adsorption tuning strategy via a Zn–P–Cd coordinated photocatalyst (denoted as P–Cd4ZnS5), in which the diffuse 3p orbital of the coordinated P site enables close P–O overlap with the oxygen end of *CO, thus leading to a parallel *CO configuration by simultaneously forming P–O and Zn–C bonds. Moreover, the stabilized parallel-type *CO subsequently undergoes hydrogenation at adjacent Cd sites to yield *CHO intermediates toward the CH4 reaction pathway. As a result, the optimized P–Cd4ZnS5 achieves an efficient CO2-to-CH4 conversion under ambient light irradiation at 120 mW cm–2, including a high selectivity of ∼93.8%, a CH4 production rate of ∼366 μmol g–1 h–1, and a sustained stability of >120 h, substantially exceeding most of the previous reports. Our work proposes an attractive strategy to tune parallel-type *CO adsorption for steering photocatalytic CO2 reduction toward deep-reduction products with high efficiency, selectivity, and stability.
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